材料科学
微尺度化学
制作
多孔性
烧结
纳米技术
多孔介质
抗压强度
保温
陶瓷
热的
复合材料
医学
替代医学
数学
数学教育
物理
病理
气象学
图层(电子)
作者
Wenlong Huo,Xiaoyan Zhang,Elena Tervoort,Silvan Gantenbein,Jinlong Yang,André R. Studart
标识
DOI:10.1002/adfm.202003550
摘要
Abstract Porous materials are useful as lightweight structures, bone substitutes, and thermal insulators, but exhibit poor mechanical properties compared to their dense counterparts. Biological materials such as bone and bamboo are able to circumvent this trade‐off between porosity and mechanical performance by combining pores at multiple length scales. Inspired by these biological architectures, a manufacturing platform that allows for the fabrication of Al 2 O 3 foams and Al 2 O 3 /Al composites with hierarchical porosity and enhanced mechanical properties is developed. Macroscale pores are formed through the assembly of aluminum particles around templating air bubbles in wet foams, whereas the thermal oxidation of the metal particles above 800 °C generates porosity at the micrometer scale. After elucidating the mechanism of pore formation under different sintering conditions at the microscale, the mechanical performance of the resulting hierarchical foams using compression experiments and finite element simulations is evaluated. Porous materials manufactured via this simple approach are found to reach unparalleled mechanical properties with near‐zero sintering shrinkage and minimum loss in mechanical strength. The ability to produce macroscopic objects with ultrahigh strength at porosities up to 95% makes this an attractive manufacturing technology for the fabrication of high‐performance lightweight structures or advanced thermal and acoustic insulators.
科研通智能强力驱动
Strongly Powered by AbleSci AI